| Literature DB >> 27581732 |
Derang Cao1, Hao Li2, Lining Pan1, Jianan Li1, Xicheng Wang2, Panpan Jing1, Xiaohong Cheng1, Wenjie Wang3, Jianbo Wang1,2, Qingfang Liu1.
Abstract
We have demonstrated the synthesis of γ-Fe2O3 nano-particles through a facile and novel calcination process in the air. There is no pH regulation, gas atmosphere, additive, centrifugation or other complicated procedures during the preparing process. A detailed formation process of the nano-particles is proposed, and DMF as a polar solvent may slower the reaction process of calcination. The structures, morphologies, and magnetic properties of γ-Fe2O3 nano-particles were investigated systematically, and the pure γ-Fe2O3 nano-particles obtained at 200 °C display uniform morphology good magnetic property. The saturation magnetization of obtained pure γ-Fe2O3 is about 74 emu/g, which is comparable with bulk material (76 emu/g) and larger than other results. In addition, the photocatalytic activity for degradation of methylene blue is also studied, which shows proper photocatalytic activity.Entities:
Year: 2016 PMID: 27581732 PMCID: PMC5007676 DOI: 10.1038/srep32360
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1The schematic diagram of experimentation.
Figure 2The formation mechanism of γ-Fe2O3 nano-particles.
Figure 3SEM images of of nano-particles of different calcinations temperature (a) 100 °C, (b) 150 °C, (c) 200 °C, (d) 250 °C, (e) 300 °C, (f) 350 °C, and (g) 400 °C, respectively. The inset of (c) is the size distributions of nano-particles at 200 °C.
Figure 4XRD patterns of γ-Fe2O3 nano-particles at different calcinations temperature.
Figure 5XPS patterns of γ-Fe2O3 nano-particles under 200 °C.
(a) Full scanned XPS spectra, (b) XPS spectra of Fe 2p core-level.
Figure 6Typical TEM images (a,b), SAED (c), HRTEM image (d,e), EDX (f), and grain size distributions of γ-Fe2O3 nano-particles of 200 °C.
Figure 7(a,b) Room temperature M-H loops for γ-Fe2O3 nano-particles and its corresponding Ms of different CT; (c) Temperature dependence of hysteresis loops measured at 80 K, 180 K, and 300 K of the pure γ-Fe2O3 nano-particles of 200 °C. (d) Comparisons of our work and other typical results of the particles size and Ms of γ-Fe2O3 nano-particles. The samples have been marked with circle (nano-particles) and pentagon (others), the values of the size represents the diameter of the samples.
Compare the typical methods or processes with ours.
| Method or process | Solvent or Additive or surfactant | Main reaction conditions | Centrifugation or wash | Others | Particle size (nm) | ||
|---|---|---|---|---|---|---|---|
| solvothermal | water, H2O2, D-(+)-C6H12O6, C6H12O6, oleic acid | / | 400 °C, 0.5 h | ethanol | Need ultrasound, dried using H2O2 | ~12 | 26–42 |
| wet chemical method | HCl, water, TEOS ethanol, ammonia aqueou solution, | 9.7 | 2 h, 30 min, 60 min | DMF, ethanol, water | using water and ethanol dried at 70 °C | 17–29 | / |
| high-temperature solution reaction | diphenylether, 1,2-hexadecanediol, oleic acid, oleylamine | / | Ar flow all time, 200 °C 30 min, 265 °C 30 min | ethanol | Need Ar | 6.4 | / |
| sole-gel | PVP, vinyl alcohol, saturated metal nitrate | / | 150 °C, 2 h, 400 °C, 4 h | / | thermal degradation | 30–50 | / |
| microemulsions | octyl ether, oleic acid, (CH3)3NO, ethanol | / | 100 °C, 1 h, 130 °C, 2 h, reflux 1 h | ethanol | Need Ar | 4–16 | / |
| Massart’s method | NaOH, HNO3, FeNO3 | / | 450~1200 °C, 30 min | acetone | / | 4 | / |
| thermal decomposition | Ethanol, CTAB, CON2H4 | / | 2.5 h, 200 °C 1 h | ethanol | Dried at 45 °C | 28–37 | 8–67 |
| wet chemical method | HCl, water, TEOS ethanol, ammonia aqueou solution, | 9.7 | 2 h, 30 min, 60 min | DMF, ethanol, water | Dried at 70 °C using water and ethanol | 17–29 | / |
| coprecipitaion | Water, ammonium hydroxide, urea, CTAB | 10~11 | 2~3 h, 70 °C | water | Need vacuum, 120 °C | 10 | 69.8 |
| aerosol pyrolysis | Water, oxalic acid, ammonia aqueou solution, KIO3 | / | ~300 °C, ~500 °C | water | Need nitrogen | 50–120 | / |
| combustion method | glycine, ammonium nitrate, starch, polyethylene glycol | / | 400 °C 2 h | / | Complex collection process | 45–55 | / |
| chemical reaction | ethanol, water, hexane, 1-octadecene, oleic acid, sodium oleate | / | 70 °C, 4 h | water, ethanol | Dried 320 °C, 0.5 h | 5–22 | / |
| sonochemical route | Decahydronaphthalene, pentane | / | 300 °C, 400 °C, 450 °C, 3 h | Yes | Ultrasonic 2 h, need vacuum | / | 50 |
| ultrasonic decomposition | anhydrous decane, pentane | / | room temperature, sonicate for 3 h | / | Dried under vacuum 300 °C, 3 h | 25 | 38–55 |
| hydrothermal | Water, MOE, acetylacetone, | Yes | 140 °C, 4 h | acetone | Dried overnight under N2 | 12–26 | 53–73 |
| hydrosol chemical reaction | Water, HCl, NaOH | 11~12 | Papered Fe3O4 then Fe3O4 was oxidated for 30 min at about 100 °C | water, HCl | Complex reaction process | 20–50 | / |
| This work | DMF | No | 200 °C, 2 h | No | No | ~30 | 74 |
These methods or processes are not confined to the literatures we list.